A stereoscopic display device is provided. The stereoscopic display device comprises: a display panel (100), comprising a plurality of first display units (101) and a plurality of second display units (102) which are alternately arranged; and a grating (200) positioned on a light exiting side of the display panel (100) and including a plurality of light-transmitting regions (a) and a plurality of light-shielding regions (b), wherein the stereoscopic display device comprises a lens (300) with a light divergence action at a position corresponding to each of the light-transmitting regions (a) of the grating (200). Therefore, when the stereoscopic display device is viewed at a short distance, a mechanical performance of the stereoscopic display device is improved.
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1. A stereoscopic display device, comprising
a display panel, comprising a plurality of first display units and a plurality of second display units which are alternately arranged;
a grating, disposed on a light exiting side of the display panel and comprising a plurality of light-transmitting regions and a plurality of light-shielding regions,
wherein the display device comprises a lens with a light divergence action at a position corresponding to each of the light-transmitting regions of the grating;
wherein, the lens with the light divergence action is a plano concave lens;
wherein, an optical axis of the plano concave lens passes through a center point of the corresponding light-transmitting region, by taking the center point of the light-transmitting region as a coordinate origin (0, 0), an x axis being parallel with the grating, and a y axis being perpendicular to the grating, any point (x, y) on the concave surface of the plano concave lens meets conditions of:
n sin a=sin(a+b); tan(90°−a+c)=D+S−y/w−x; tan(90°−a−b+c)=D−y/w−x; (D+S−y)sin(90°−a−b+c)=sin(a+b−c); where, x is an x coordinate of the point, y is a y coordinate of the point, n is a refractive index of the lens, a is an incident angle, b is a difference between an incident angle and a refractive angle, c is an included angle between a tangential line of the point and x axis on a refracted light side, w is a maximal distance between left and right eyes and the optical axis of the plano concave lens when the left and right eyes are located on one side of the optical axis of the plano concave lens, D is a distance between a design position and the grating, S+D is a distance between a first position and the grating, wherein, the first position is the design position of the display panel without the lens.
2. The stereoscopic display device according to
3. The stereoscopic display device according to
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12. The stereoscopic display device according to
13. The stereoscopic display device according to
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15. The stereoscopic display device according to
16. The stereoscopic display device according to
17. The stereoscopic display device according to
18. The stereoscopic display device according to
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This application is the National Stage of PCT/CN2014/094054 filed on Dec. 17, 2014, which claims priority under 35 U.S.C. §119 of Chinese Application No. 201410466831.8 filed on Sep. 12, 2014, the disclosure of which is incorporated by reference.
Embodiments of the invention relate to a stereoscopic display device.
In recent years, stereoscopic display has become a mainstream trend in a display field. The most basic principle of the stereoscopic display is that: left and right eyes of a person receive different images with parallax, then the different images are superimposed and regenerated by a brain, to form a three-dimensional stereoscopic view.
A three-dimensional display technology mainly comprises a glasses type and a naked-eye type; as no glasses need to wear, the naked-eye type three-dimensional display has attracted more and more attention. An existing naked-eye stereoscopic display device, as shown in
As shown in
Embodiments of the invention provide a stereoscopic display device, and the stereoscopic display device not only has an excellent mechanical performance but also can guarantee a 3D display effect obtained at a short distance.
The embodiments of the invention provide a stereoscopic display device, comprising: a display panel, comprising a plurality of first display units and a plurality of second display units which are alternately arranged; a grating, disposed on a light exiting side of the display panel and comprising a plurality of light-transmitting regions and a plurality of light-shielding regions, wherein the display device comprises a lens with a light divergence action at a position corresponding to each of the light-transmitting regions of the grating.
In order to clearly illustrate the technical solution of the embodiments of the invention, the drawings of the embodiments will be briefly described in the following; it is obvious that the described drawings are only related to some embodiments of the invention and thus are not limitative of the invention.
In order to make objects, technical details and advantages of the embodiments of the invention apparent, the technical solutions of the embodiment will be described in a clearly and fully understandable way in connection with the drawings related to the embodiments of the invention. It is obvious that the described embodiments are just a part but not all of the embodiments of the invention. Based on the described embodiments herein, those skilled in the art can obtain other embodiment(s), without any inventive work, which should be within the scope of the invention.
An embodiment of the invention provides a stereoscopic display device, as shown in
Exemplarily, as shown in
As the distance f between the grating and the display units is proportional to the viewing distance H between the left and right eyes and the grating, the smaller the distance between the grating and the display units, the smaller the viewing distance H between the left and right eyes and the grating, then while the distance between the grating and the display units is increased, the display device may be provided with the lens with the light divergence action in the light-transmitting regions of the grating, so that a 3D image can be viewed at a position of the original viewing distance. As shown in
It should be explained that light passing through the lens with the light divergence action can be diverged. The lens may be the lens 300 as shown in
An embodiment of the invention provides a stereoscopic display device, comprising a display panel, a grating and a lens disposed at a position corresponding to each of the light-transmitting regions of the grating, compared with a case without the lens, after light of the first display units and the second display units is refracted by the lens, the left eye receives a left-eye image and the right eye receives a right-eye image at a nearer position, and the display device can realize that the 3D image can be viewed at a shorter distance by using the lens with the light divergence action under the condition of better mechanical performance of the display panel (the display panel is thicker).
Exemplarily, the mechanical performance of the display panel can be increased by increasing a thickness of a glass substrate on a light exiting side of the display panel; or the mechanical performance of the display panel can also be increased by adding a spacer glass between the glass substrate and the grating.
Alternatively, the display device is provided with a lens with a light divergence action at a position corresponding to each of light-transmitting region of the grating, a plurality of lenses corresponding to a plurality of light-transmitting regions have the same divergence effect; in other words, each lens is in a same shape, and has a same light deflecting degree. Of course, two or more adjacent light-transmitting regions correspond to one lens, but the lens has the same light divergence effect at each of the positions corresponding to the two or more light-transmitting regions, for example, a curvature is consistent, thus ensuring the same light deflection in each of the light-transmitting regions; and in the embodiment of the invention, the case that one lens corresponds to one light-transmitting region is taken as an example for detailed description.
Exemplarily, the lens with the light divergence action is disposed on a light exiting side of the grating. Of course, the lens with the light divergence action may also be disposed between the grating and the display panel; and when the lens is disposed between the grating and the display panel, transparent adhesive may be filled between the grating and the display panel to favorably fix the lens and the grating. In the embodiments and the drawings of the invention, the case that the lens with the light divergence action is disposed on a light exiting side of the grating is taken as an example for detailed description.
Alternatively, as shown in
Alternatively, as shown in
where, x is an x coordinate corresponding to any point on the concave surface, y is a y coordinate corresponding to any point on the concave surface, n is a refractive index of the lens, a is an incident angle, b is a difference between an incident angle and a refractive angle, c is an included angle between a tangential line of any point on the concave surface and x axis at a refracted light side, w is a maximal distance between the left and right eyes and the optical axis of the lens when the left and right eyes are located on one side of the optical axis of the concave lens, D is a distance between a design position and the grating, S+D is a distance between a first position and the grating, wherein, the first position is the design position of the display panel without the lens. The design position is an optimal position for obtaining a 3D image. In addition, in the embodiments of the invention, the case that the 3D image is obtained at the optimal position is taken as an example.
When the lens meets the above conditions, as shown in
It should be explained that the embodiments and drawings of the invention take one lens as example, and the lenses corresponding to the light-transmitting regions of the grating may refer to a design principle of the above lens.
Exemplarily, as shown in
Exemplarily, as shown in
Of course, in embodiments of the invention, the grating and the lenses with the light divergence action may be not of an integral structure. For example, the lenses may be adhered to a surface of the grating by adhesive and the like, which is not limited by the embodiments of the invention.
Exemplarily, the grating and the lenses with the light divergence action may be formed by one patterning process. For example, the grating and the lenses with the light divergence action may be formed by a photolithograph process.
For example, after the grating is formed, transparent photoresist is coated on a surface of the grating, and the transparent photoresist is formed to have a surface appearance of the lenses with the light divergence action by one exposure, developing and etching.
For forming the grating and the lenses with the light divergence action by the photolithograph process, the photoresist may be formed on a glass substrate, a photoresist reserving region and a photoresist removing region are formed by one exposure and developing, a plasma dry etching is performed in the photoresist removing region, concave sphere lenses or triangular prisms are formed on a surface of the glass substrate, then black mylars are adhered to the original photoresist reserving region to make it to be light shading, so as to form a grating with the light divergence action.
For the integral structure of the grating and the lenses with the light divergence action formed by such manner, the grating and the lenses with the light divergence action are made of a same material at the same time, and are good in stability compared with those made of different materials, and the grating and the lenses are not easy to be separated.
The stereoscopic display device provided by the embodiments of the invention comprises a display panel, a grating and a lens with a light divergence action disposed at a position corresponding to a light-transmitting region of the grating, compared with a case without the lens, after light of the first display units and the second display units is refracted by the lens, the left eye receives a left-eye image and the right eye receives a right-eye image at a nearer position, and the display device can realize that the 3D image can be viewed at a shorter distance by the lens with the light divergence action under the condition of better mechanical performance of the display panel (the display panel is thicker).
The foregoing embodiments merely are exemplary embodiments of the invention, and not intended to define the scope of the invention; modification or substitution which is easily thought by any person skilled in the art within the technical scope disclosed by the invention should fall into the protection scope of the invention. Therefore, the protection scope of the invention should be the protection scope of the claims.
The application claims priority of Chinese Patent Application No. 201410466831.8 filed on Sep. 12, 2014, the disclosure of which is incorporated herein by reference in its entirety as part of the present application.
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